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  4. Electro - optical simulation of diffraction in solar cells
 
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2010
Journal Article
Title

Electro - optical simulation of diffraction in solar cells

Abstract
A simulation method is presented and evaluated for simulating two- and three dimensional wave optical effects in crystalline silicon solar cells. Due to a thickness in the 100 µm range, optical properties of these solar cells typically are simulated, primarily through the use of ray-tracing. Recently, diffractive elements such as gratings or photonic crystals have been investigated for their application in crystalline silicon solar cells, making it necessary to consider two- and three dimensional wave optical effects. The presented approach couples a rigorous wave optical simulation to a semiconductor device simulation. In a first step, characteristic parameters, simulated for a reference setup using the electro-optical method and the standard procedure are compared. Occurring differences provide a measure to quantify the errors of the electro-optical method. These errors are below 0.4% relative. In a second step the electro-optical method is used to simulate a crystalline silicon solar cell with a back side diffractive grating. It is found that the grating enhances to short circuit current density jSC of the solar cell by more than 1 mA/cm2.
Author(s)
Peters, M.
Rüdiger, Marc
Bläsi, Benedikt  
Platzer, Werner J.  
Journal
Optics Express  
Open Access
File(s)
Download (1.01 MB)
Rights
Use according to copyright law
DOI
10.1364/OE.18.00A584
10.24406/publica-r-223405
Additional link
Full text
Language
English
Fraunhofer-Institut für Solare Energiesysteme ISE  
Keyword(s)
  • Solarthermie und Optik

  • Silicium-Photovoltaik

  • Farbstoff

  • Organische und Neuartige Solarzellen

  • Angewandte Optik und funktionale Oberflächen

  • Oberflächen - Konditionierung

  • Passivierung

  • Lichteinfang

  • Photonenmanagement

  • Mikrostrukturierte Oberflächen

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